DocumentCode
13478
Title
Impact of Raman Scattered Noise from Multiple Telecom Channels on Fiber-Optic Quantum Key Distribution Systems
Author
Ferreira da Silva, T. ; Xavier, G.B. ; Temporao, Guilherme P. ; von der Weid, J.P.
Author_Institution
Center for Telecommun. Studies, Pontifical Catholic Univ. of Rio de Janeiro, Rio de Janeiro, Brazil
Volume
32
Issue
13
fYear
2014
fDate
July1, 1 2014
Firstpage
2332
Lastpage
2339
Abstract
In this paper, we analyze the impact of the spontaneous Raman scattered noise generated from multiple optical classical channels on a single quantum key distribution channel, all within the telecom C-band. We experimentally measure the noise generated from up to 14 continuous-wave laser sources with different wavelengths using the dense wavelength division multiplexing (DWDM) standard, in both propagation directions in respect to the QKD channel, over different standard SMF-28 fiber lengths. We then simulate the expected secure key generation rate for a decoy-states-based system as a function of distance under the presence of simultaneous telecom traffic with different modulation techniques, and show a severe penalty growing with the number of classical channels present. Our results show that, for in-band coexistence, the telecom channels should be distributed as close as possible from the quantum channel to avoid the Raman noise peaks. Operation far from the zero dispersion wavelength of the fiber is also beneficial as it greatly reduces the generation of four-wave mixing inside the quantum channel. Furthermore, narrow spectral filtering on the quantum channels is required due to the harsh limitations of performing QKD under real telecom environments, with the quantum and several classical channels coexisting in the same ITU-T C-band.
Keywords
Raman spectra; multiwave mixing; quantum cryptography; telecommunication channels; wavelength division multiplexing; DWDM standard; Raman scattered noise; dense wavelength division multiplexing; fiber optic quantum key distribution systems; four wave mixing; multiple optical classical channels; multiple telecom channels; quantum channel; Noise; Optical fiber communication; Optical fiber devices; Optical fiber dispersion; Optical fibers; Photonics; Optical fiber communication; Raman scattering; quantum key distribution (QKD); wavelength division multiplexing (WDM) networks;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2014.2322108
Filename
6819012
Link To Document